Senior Credit Risk Data Scientist

Posted 2026-05-06
Remote, USA Full-time Immediate Start

The mission:


The Senior Credit Risk Data Scientist at Baubap is responsible for designing, implementing, and improving predictive models that directly impact our credit decisions and portfolio performance. This role will play a critical part in generating accurate forecasts, building data-driven methodologies, and continuously iterating based on real-world learning—always grounded in a deep understanding of the business context.


 


The expected outcome:



  • Develop, deploy, and maintain machine learning models that improve the accuracy of forecasts across key business levers such as approval rate, disbursement rate, loss rate, and average loan amount.

  • Deliver short-, mid-, and long-term forecasts for key portfolio and business indicators to guide strategic decision-making.

  • Continuously improve models and data pipelines based on new insights, feedback loops, and shifts in portfolio dynamics.

  • Build methodologies that reflect a clear understanding of the business and customer behavior—combining data science best practices with practical, real-world constraints.


 


The day to day tasks:



  • Model development & deployment: Design and implement predictive models (classification, regression, time series, etc.) to forecast credit risk metrics and optimize decision-making.

  • Model iteration & lifecycle management: Regularly retrain and improve models based on recent performance, business evolution, and new data availability.

  • Forecasting: Build robust models to predict portfolio KPIs over different time horizons (daily/weekly/monthly), including loss rate, disbursed amount, average ticket size, and approval rate.

  • Experimentation: Collaborate with cross-functional teams to design and evaluate A/B tests or quasi-experiments that inform modeling improvements.

  • Feature engineering: Create high-quality, interpretable features from raw transactional and behavioral data.

  • Data exploration & root-cause analysis: Use statistical techniques to detect anomalies, understand shifts in model performance, and identify risks or opportunities.

  • Business alignment: Partner closely with Risk, Product, Finance, and Data Engineering teams to ensure that models and methodologies are aligned with business goals and operational realities.

  • Documentation & reproducibility: Maintain clear documentation of models, assumptions, and decisions to ensure transparency, auditability, and future scaling.


 


Why YOU should apply:



  • 5+ years of experience developing, validating, and deploying predictive models in a production environment, preferably within financial services or credit risk.

  • Strong proficiency in SQL for data extraction and transformation.

  • Advanced skills in at least one programming language commonly used in data science, such as Python or R.

  • Proven ability to build and tune machine learning models (e.g., classification, regression, time series forecasting), using libraries such as scikit-learn, XGBoost, LightGBM, etc.

  • Experience maintaining and iterating on models based on real-world performance and shifting data patterns.

  • Comfortable working with experimentation frameworks, A/B testing, and validation pipelines.

  • Ability to translate complex technical insights into clear business recommendations.

  • Strong understanding of statistical concepts and their application in risk modeling.

  • Fluent in English (written and spoken); able to work and communicate effectively with an international and cross-functional team.

  • Bonus: experience in financial risk areas

  • Bonus: experience working with version control tools (e.g., Git), workflow managers (e.g., Airflow), and cloud-based data platforms (e.g., AWS, GCP, or similar).


 


What we can offer:



  • Being part of a multicultural, highly driven team of professionals

  • 20 vacation days / year + 75% holiday bonus (Prima Vacacional)

  • 1 month (proportional) of Christmas bonus (Aguinaldo)

  • Food vouchers

  • Health & Life insurance

  • Competitive salary

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